01Shi W, Shen T, Xing C, Sun K, Yan Q, Niu W, Yang X, Li J, Wei C, Wang R, Fu S, Yang Y, Xue L, Chen J, Cui S, Hu X, Xie K, Xu X*, Duan S*, Xu Y*, Zhang B*, Ultrastable supported oxygen evolution electrocatalyst formed by ripeninginduced embedding[J]. Science, 2025, 387, 791.
02Zhang B, Zheng X L, Voznyy O, Comin R, Bajdich M, García-Melchor M, Han L, Xu J X, Liu M, Zheng L R, García de Arquer F P, Dinh C T, Fan F J, Yuan M J, Yassitepe E, Chen N, Regier T, Liu P F, Li Y H, De Luna P, Janmohamed A, Xin H L, Yang H G, Vojvodic A*, Sargent E H*. Homogeneously dispersed multimetal oxygen-evolving catalysts[J]. Science, 2016, 352(6283): 333-337
03Liu M, Pang Y J, Zhang B, De Luna P, Voznyy O, Xu J X, Zheng X L, Dinh C T, Fan F J, Cao C H, García de Arquer F P, Saberi Safaei T, Mepham A, Klinkova A, Kumacheva E, Filleter T, Sinton D, Kelley S O*, Sargent E H*. Enhanced electrocatalytic CO₂ reduction via field-induced reagent concentration[J]. Nature, 2016, 537: 382-386.
04Zhang B, Wang L, Cao Z, Kozlov S M, García de Arquer F P, Dinh C T, Li J, Wang Z Y, Zheng X L, Zhang L S, Wen Y Z, Voznyy O, Comin R, De Luna P, Regier T, Bi W L, Alp E EE, Pao C W, Zheng L R, Hu Y F, Ji Y J, Li Y Y, Zhang Y, Cavallo L*, Peng H S*, Sargent E H*. High-valence metals improve oxygen evolution reaction performance by modulating 3d metal oxidation cycle energetics[J]. Nature Catalysis, 2020.
05Zheng X L, Zhang B, De Luna P, et al. Theory-driven design of high-valence metal sites for water oxidation confirmed using in situ soft X-ray absorption[J]. Nature Chemistry, 2018, 10: 149-155.
06Zhu Y J, Liu C, Cui S W, Lu Z R, Ye J Y, Wen Y Z, Shi W J, Huang X X, Xue L Y, Bian J J, Li Y Y, Xu Y F*, Zhang B*. Multistep Dissolution of Lamellar Crystals Generates Superthin Amorphous Ni(OH)₂ Catalyst for UOR[J]. Advanced Materials, 2023, 35(23): 2301549.
07Zhang L S, Wang L P, Wen Y Z, Ni F L, Zhang B*, Peng H S*. Boosting Neutral Water Oxidation through Surface Oxygen Modulation[J]. Advanced Materials, 2020, 32(31): 2002297.
08He S S, Zhang Y Y, Qiu L B, Zhang L S, Xie Y, Pan J, Chen P N, Wang B J, Xu X J, Hu Y J, Dinh C T, De Luna P, Norouzi Banis M, Wang Z Q, Sham T K, Gong X G, Zhang B*, Peng H S*, Sargent E H*. Chemical-to-Electricity Carbon: Water Device[J]. Advanced Materials, 2018, 30(46): 1707635.
09Wang N, Cao Z, Zheng X L, Zhang B*, Kozlov S M, Chen P N, Zou C Q, Kong X B, Wen Y Z, Liu M, Zhou Y S, Dinh C T, Zheng L R, Peng H S, Zhao Y, Cavallo L, Zhang X D*, Sargent E H*. Hydration-Effect-Promoting Ni–Fe Oxyhydroxide Catalysts for Neutral Water Oxidation[J]. Advanced Materials, 2020, 32(47): 1906806.
10Sun K, Mao W, Jin L J, Shi W J, Niu W Z, Wei C Y, He Y X, Yan Q S, Wang R J, Li Y YY, Zhang B*. Enhancing Heterointerface Coupling for Durable Industrial-Level Proton Exchange Membrane Water Electrolysis[J]. Angewandte Chemie International Edition, 2025.
11He S S, Ni F L, Ji Y J, Wang L, Wen Y Z, Bai H P, Liu G J, Zhang Y, Li Y Y*, Zhang B*, Peng H S*. The p-Orbital Delocalization of Main-Group Metals to Boost CO₂ Electroreduction[J]. Angewandte Chemie International Edition, 2018, 57(49): 16114-16119.
12Wang L P, Zhu Y J, Wen Y Z, Li S Y, Cui C Y, Ni F L, Liu Y X, Lin H P, Li Y Y, Peng H S*, Zhang B*. Regulating the Local Charge Distribution of Ni Active Sites for the Urea Oxidation Reaction[J]. Angewandte Chemie International Edition, 2021, 60(19): 10577-10582.
13Zhang L S, Wang L P, Lin H P, Liu Y X, Ye J Y, Wen Y Z, Chen A, Wang L, Ni F L, Zhou Z Y, Sun S G, Li Y YY*, Zhang B*, Peng H S*. A Lattice-Oxygen-Involved Reaction Pathway to Boost Urea Oxidation[J]. Angewandte Chemie International Edition, 2019, 58(46): 16820-16825.
14Wen Y Z, Chen P N, Wang L, Li S Y, Wang Z Y, Abed J, Mao X N, Min Y M, Dinh C T, De Luna P, Huang R, Zhang L S, Wang L, Wang L P, Nielsen R J, Li H H, Zhuang T T, Ke C C, Voznyy O, Hu Y F, Li Y YY, Goddard W A III, Zhang B*, Peng H S*, Sargent E H*. Stabilizing Highly Active Ru Sites by Suppressing Lattice Oxygen Participation in Acidic Water Oxidation[J]. Journal of the American Chemical Society, 2021, 143(16): 6482-6490.
15Li J J, Fu S Q, Wang R J, Sun K, Shi W J, Zeng Y W, Zhang B*. Surface sulfonic-group bonded oxygen evolution catalyst for proton exchange membrane water electrolysis[J]. Nature Communications, 2025, 16(1): 9910.
16Yan Q S, Liu C, Li W H, Sun K, Zhou Y L, Han N, Niu W Z, Chen J Y, Yang X, Chen J F, He Y X, Lu Z R, Li Y YY, Zhang B*. Ionomer engineering for optimized water channels in industry-scale water electrolysis using non-noble metal catalyst[J]. Nature Communications, 2025, 16(1): 10201.
17Niu W Z, Feng J, Chen J F, Deng L, Guo W, Li H J, Zhang L Q, Li Y YY, Zhang B*. High-efficiency C₃ electrosynthesis on a lattice-strain-stabilized nitrogen-doped Cu surface[J]. Nature Communications, 2024, 15(1): 7070.
18Niu W Z, Chen Z, Guo W, Mao W, Liu Y, Guo Y, Chen J Z, Huang R, Kang L, Ma Y W, Yan Q S, Ye J Y, Cui C Y, Zhang L Q, Wang P, Xu X, Zhang B*. Pb-rich Cu grain boundary sites for selective CO-to-n-propanol electroconversion[J]. Nature Communications, 2023, 14(1): 4882.
19Wen Y Z, Liu C, Huang R, Zhang H, Li X B, García de Arquer F P, Liu Z, Li Y YY, Zhang B*. Introducing Brønsted acid sites to accelerate the bridging-oxygen-assisted deprotonation in acidic water oxidation[J]. Nature Communications, 2022, 13(1): 4871.